Chapter Gen AI and Interior Design Representation: Applying Design Styles Using Fine-Tuned Models

This paper explores the applicability of Image-generation AI in the field of interior architectural design, with a particular focus on automating interior design representation based on design styles. Interior design representation involves a complex process that integrates visual elements with func...

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Main Authors: Jeong, Hyun, Kim, Youngchae, Yoo, Youngjin, Cha, SeungHyun, Lee, Jin-Kook
Formato: Online
Idioma:inglés
Publicado: Firenze University Press 2024
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Acceso en liña:ONIX_20240402_9791221502893_6
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author Jeong, Hyun
Kim, Youngchae
Yoo, Youngjin
Cha, SeungHyun
Lee, Jin-Kook
author_browse Cha, SeungHyun
Jeong, Hyun
Kim, Youngchae
Lee, Jin-Kook
Yoo, Youngjin
author_facet Jeong, Hyun
Kim, Youngchae
Yoo, Youngjin
Cha, SeungHyun
Lee, Jin-Kook
author_sort Jeong, Hyun
collection Directory of Open Access Books
description This paper explores the applicability of Image-generation AI in the field of interior architectural design, with a particular focus on automating interior design representation based on design styles. Interior design representation involves a complex process that integrates visual elements with functionality and user experience. Effectively visualizing this process is essential for facilitating communication among the various stakeholders involved in the design process. However, traditional visualization methods are constrained by expert resources, costs, and time limitations. In contrast, image-generation AI has the potential to automate various design elements, including design styles, components, and spatial arrangements, to enhance representation. In this study, we evaluated the performance of a base model using various design styles and, based on the evaluation results, selected styles for fine-tuning. The methodology for fine-tuning these design styles involved the following steps: 1) data preparation and preprocessing, 2) hyperparameter optimization, and 3) model training and construction. Utilizing the fine-tuned model thus constructed, we conducted image generation demonstrations. The research results revealed that design styles not well represented by the base model were effectively captured, and high-quality images were generated by the fine-tuned model. Notably, this fine-tuned model demonstrated the ability to represent images of specific design styles with a high degree of accuracy in capturing the characteristics and keywords associated with each style, compared to the base model. This implies that through fine-tuning image-generation AI, a wide range of applications can be inferred when aiming to create customized designs by considering these aspects. In conclusion, this study explores an efficient approach to interior design representation in the field of interior architecture by employing image-generation AI and proposes a method to effectively generate visualized images by training on design style keywords. Through this approach, our study can contribute to improving the interior design process by facilitating the generation of visualized images that reflect design styles. Furthermore, the study aims to suggest the potential for applying this approach not only to the field of interior architecture but also across various domains to achieve effective visualization
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language eng
publishDate 2024
publishDateRange 2024
publishDateSort 2024
publisher Firenze University Press
publisherStr Firenze University Press
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spelling doab-20.500.12854ir-1362532025-07-18T09:46:51Z Chapter Gen AI and Interior Design Representation: Applying Design Styles Using Fine-Tuned Models Jeong, Hyun Kim, Youngchae Yoo, Youngjin Cha, SeungHyun Lee, Jin-Kook Interior Architecture Design Interior Design Representation Generative AI Model Fine-tuning thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence This paper explores the applicability of Image-generation AI in the field of interior architectural design, with a particular focus on automating interior design representation based on design styles. Interior design representation involves a complex process that integrates visual elements with functionality and user experience. Effectively visualizing this process is essential for facilitating communication among the various stakeholders involved in the design process. However, traditional visualization methods are constrained by expert resources, costs, and time limitations. In contrast, image-generation AI has the potential to automate various design elements, including design styles, components, and spatial arrangements, to enhance representation. In this study, we evaluated the performance of a base model using various design styles and, based on the evaluation results, selected styles for fine-tuning. The methodology for fine-tuning these design styles involved the following steps: 1) data preparation and preprocessing, 2) hyperparameter optimization, and 3) model training and construction. Utilizing the fine-tuned model thus constructed, we conducted image generation demonstrations. The research results revealed that design styles not well represented by the base model were effectively captured, and high-quality images were generated by the fine-tuned model. Notably, this fine-tuned model demonstrated the ability to represent images of specific design styles with a high degree of accuracy in capturing the characteristics and keywords associated with each style, compared to the base model. This implies that through fine-tuning image-generation AI, a wide range of applications can be inferred when aiming to create customized designs by considering these aspects. In conclusion, this study explores an efficient approach to interior design representation in the field of interior architecture by employing image-generation AI and proposes a method to effectively generate visualized images by training on design style keywords. Through this approach, our study can contribute to improving the interior design process by facilitating the generation of visualized images that reflect design styles. Furthermore, the study aims to suggest the potential for applying this approach not only to the field of interior architecture but also across various domains to achieve effective visualization 2024-04-07T23:16:09Z 2024-04-07T23:16:09Z 2024-04-02T15:44:24Z 2023 chapter ONIX_20240402_9791221502893_6 2704-5846 https://library.oapen.org/handle/20.500.12657/89037 9791221502893 https://directory.doabooks.org/handle/20.500.12854/136253 eng Proceedings e report open access image/jpeg n/a https://library.oapen.org/bitstream/20.500.12657/89037/1/9791221502893_95.pdf Firenze University Press 10.36253/979-12-215-0289-3.95 10.36253/979-12-215-0289-3.95 2ec4474d-93b1-4cfa-b313-9c6019b51b1a 9791221502893 8 Florence open access
spellingShingle Interior Architecture Design
Interior Design Representation
Generative AI
Model Fine-tuning
thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence
thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence
Jeong, Hyun
Kim, Youngchae
Yoo, Youngjin
Cha, SeungHyun
Lee, Jin-Kook
Chapter Gen AI and Interior Design Representation: Applying Design Styles Using Fine-Tuned Models
title Chapter Gen AI and Interior Design Representation: Applying Design Styles Using Fine-Tuned Models
title_full Chapter Gen AI and Interior Design Representation: Applying Design Styles Using Fine-Tuned Models
title_fullStr Chapter Gen AI and Interior Design Representation: Applying Design Styles Using Fine-Tuned Models
title_full_unstemmed Chapter Gen AI and Interior Design Representation: Applying Design Styles Using Fine-Tuned Models
title_short Chapter Gen AI and Interior Design Representation: Applying Design Styles Using Fine-Tuned Models
title_sort chapter gen ai and interior design representation applying design styles using fine tuned models
topic Interior Architecture Design
Interior Design Representation
Generative AI
Model Fine-tuning
thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence
thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence
topic_facet Interior Architecture Design
Interior Design Representation
Generative AI
Model Fine-tuning
thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence
thema EDItEUR::U Computing and Information Technology::UY Computer science::UYQ Artificial intelligence
url ONIX_20240402_9791221502893_6
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